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Module ENS-4403:
Data Management and Analysis

Rheoli a Dadansoddi Data 2025-26
ENS-4403
2025-26
Ysgol Gwyddorau Amgylcheddol a Naturiol
Modiwl - Semester 1
15 credits
Module Organiser: Lucinda Kirkpatrick
Overview

This module takes students from the basic principles of designing research questions and gathering samples of data, through to advanced skills in managing, visualising and interrogating data using statistical tests. These essential skills are needed across disciplines involved in natural resource management and conservation, from biology to the social sciences. The course is taught using Microsoft Excel, the free statistical programming language R, and the RStudio integrated development environment. These are used for data science in multiple sectors and industries, enabling flexible and repeatable data handling, visualisation and statistical testing workflows. Running themes throughout the module include: tackling 鈥渕athsphobia鈥 and reducing anxiety around programming and quantitative data analysis, and learning how to tackle programming problems independently. Topics may include: How does using data help us tell stories about the world? Examples of data uses and misuses; Principles of sampling from populations; What are statistical tests and why do we need them?; Working with R for data management, exploration and visualisation; Principles of tidy data; Data distributions, sample sizes, and basic statistical tests in R; Multiple linear regression and mixed effects models; How to explore new methods for data analysis in R 鈥 beyond linear models.

Assessment Strategy

Threshold - A threshold student should have a basic knowledge of how to prepare a research question, define a hypothesis, outline a study design, read an existing dataset into R, calculate descriptive statistics, produce basic data visualisations using default settings, apply basic statistical tests appropriately, and attempt interpretation. Assessment 1: complete a pre-prepared template for a quantitative analysis write-up using only descriptive statistics and data visualisation: student completes all sections of the template and attempts interpretation. Assessment 2: Poster on chosen dataset (specified format: very short introduction, data collection and analytical methods fully explained, detailed results section including data visualisation in R, conclusions). All R code used should be provided as an appendix: Student creates a poster containing all sections of the template, attempts interpretation demonstrating basic understanding of study design, hypothesis testing, descriptive statistics and data visualisation, and has applied and interpreted an appropriate statistical test to reach a conclusion. R code appendix includes code provided during module, but includes no attempt to edit or extend code beyond the basic template. Student is able to present poster and answer basic questions (Grade C; mark range 50-59%) Good 鈥 A good student should have a good knowledge of how to prepare a research question, define a hypothesis, outline a study design, read an existing dataset into R, calculate descriptive statistics, produce good data visualisations using default settings, apply basic statistical tests appropriately, and attempt interpretation, exploring options to change settings in provided code and appropriately interpret the results to draw sound conclusions. Assessment 1: complete a pre-prepared template for a quantitative analysis write-up using only descriptive statistics and data visualisation: student completes all sections of the template, demonstrating ability to edit some aspects of the provided template code, and interprets appropriately. Assessment 2: Poster on chosen dataset (specified format: very short introduction, data collection and analytical methods fully explained, detailed results section including data visualisation in R, conclusions). All R code used should be provided as an appendix: student completes all sections of the template and attempts interpretation, demonstrating good understanding of hypothesis testing, descriptive statistics, data visualisation, and has applied and interpreted an appropriate statistical test to reach an appropriate conclusion. R code appendix includes code provided during module, with appropriate edits or additions beyond the basic template. Student is able to demonstrate good knowledge of the data presented in the poster (Grade B; mark range 60-69%) Excellent - An excellent student should have excellent knowledge of how to read an existing dataset into R, calculate descriptive statistics, and produce excellent data visualisations, exploring options to change settings in provided code, apply basic statistical tests appropriately, and appropriately interpret the results to draw sound conclusions. Assessment 1: complete a pre-prepared template for a quantitative analysis write-up using only descriptive statistics and data visualisation: student completes all sections of the template, demonstrating ability to edit multiple aspects of the provided template code, and interprets accurately. Assessment 2: Poster on chosen dataset (specified format: very short introduction, data collection and analytical methods fully explained, detailed results section including data visualisation in R, conclusions). All R code used should be provided as an appendix: student completes all sections of the template, producing an effective and detailed poster. The student interprets accurately, demonstrating excellent understanding of hypothesis testing, descriptive statistics, data visualisation, and has applied and interpreted an appropriate statistical test to reach an appropriate conclusion. R code appendix includes code provided during module, with multiple appropriate edits or additions beyond the basic template that improve interpretation or communication of results. Student is able to respond to complex questions demonstrating an excellent understanding of their poster topic material. (Grade A; mark range 70-100%)

Learning Outcomes

  • Manipulate and analyse data to calculate descriptive statistics and produce informative data visualisations using Microsoft Excel, R, RStudio and appropriate R packages.

  • apply appropriate statistical tests to datasets and draw conclusions from them

  • explain why and how quantitative data analysis methods are used to answer questions in conservation and natural resource management, and demonstrate understanding of why samples are taken from populations and how to design a testable hypothesis

Assessment method

Coursework

Assessment type

Crynodol

Description

The poster will be based on one of the datasets provided as part of the course. The student can choose which dataset they use, and they can build on the preprepared template from Assessment 1. Different poster formats will be shared, but students will be expected to create their own poster, which will then be presented at a 鈥淧oster Session鈥 at the end of the semester. Students will be questioned on their poster. This will include: 鈥ery short introduction highlighting key information 鈥ata collection and analysis fully explained (with R code provided in a supplementary appendix) 鈥etailed results section including data visualisation using R 鈥onclusions Assessment will fall into the following criteria: 25% presentation of the data in the poster format 25% Analysis 40% R code 10% poster presentation at 鈥減oster session鈥. Students will have a 2 minute pitch and a 3 minute 鈥渜uestion and answer鈥 session with a staff member. Examples will be provided for the format and layout and all R code is to be provided in the appendix.

Weighting

50%

Due date

12/12/2025

Assessment method

Report

Assessment type

Crynodol

Description

From curiosity to data (50%): This will involve completing a pre-prepared template for a quantitative analysis write up of an example dataset in R. The template will move in steps from defining a research question, formulating a hypothesis, a brief outline of an appropriate study design to answer the question and initial data exploration and visualisation.

Weighting

50%

Due date

07/11/2025

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